论文标题

石墨烯气壳的润湿特性

Wetting Properties of Graphene Aerogels

论文作者

De Nicola, Francesco, Viola, Ilenia, Tenuzzo, Lorenzo Donato, Rasch, Florian, Lohe, Martin R., Nia, Ali Shaygan, Schütt, Fabian, Feng, Xinliang, Adelung, Rainer, Lupi, Stefano

论文摘要

石墨烯疏水涂层沿着新一代的光电和流体设备铺平了道路。然而,这种疏水薄膜仅依赖于石墨烯非极性表面,而不是利用其表面粗糙度。此外,石墨烯通常不是自明的。不同的是,碳气凝岩具有高孔隙率,由于其表面粗糙度而引起的较大有效表面积和非常低的质量密度,这使它们成为新技术应用的超级综合材料的有前途的候选者。然而,尽管有一些著作报告了碳凝胶的一般超吞噬和亲脂性行为,但迄今为止,其润湿性能的详细表征仍然缺失。在这里,详细证明了石墨烯气管的润湿特性。由于Fakir效应,这些样品没有任何表面的化学功能化或表面模式,表现出具有超脂肪状态和固定的超毛状态状态,其接触角度高达$ 150 \ pm15^°$,而低接触角滞后$ \ of 15^°$。另外,评估了与水滴接触的石墨烯气凝胶的粘附力及其表面张力。例如,可以利用石墨烯气管的独特润湿性和增强的液体吸收,以减少溢油和化学泄漏事故的污染。

Graphene hydrophobic coatings paved the way towards a new generation of optoelectronic and fluidic devices. Nevertheless, such hydrophobic thin films rely only on graphene non-polar surface, rather than taking advantage of its surface roughness. Furthermore, graphene is typically not self-standing. Differently, carbon aerogels have high porosity, large effective surface area due to their surface roughness, and very low mass density, which make them a promising candidate as a super-hydrophobic material for novel technological applications. However, despite a few works reporting the general super-hydrophobic and lipophilic behavior of the carbon aerogels, a detailed characterization of their wetting properties is still missing, to date. Here, the wetting properties of graphene aerogels are demonstrated in detail. Without any chemical functionalization or patterning of their surface, the samples exhibit a super-lipophilic state and a stationary super-hydrophobic state with a contact angle up to $150\pm15^°$ and low contact angle hysteresis $\approx15^°$, owing to the fakir effect. In addition, the adhesion force of the graphene aerogels in contact with the water droplets and their surface tension are evaluated. For instance, the unique wettability and enhanced liquid absorption of the graphene aerogels can be exploited for reducing contamination from oil spills and chemical leakage accidents.

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